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Forecasting China's foreign exchange reserves using dynamic model averaging: The roles of macroeconomic fundamentals, financial stress and economic uncertainty

机译:使用动态模型平均预测中国的外汇储备:宏观经济基本面,金融压力和经济不确定性的作用

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摘要

We develop models for examining possible predictors of growth of China's foreign exchange reserves that embrace Chinese and global trade, financial and risk (uncertainty) factors. Specifically, by comparing with other alternative models, we show that the dynamic model averaging (DMA) and dynamic model selection (DMS) models outperform not only linear models (such as random walk, recursive OLS-AR(1) models, recursive OLS with all predictive variables models) but also the Bayesian model averaging (BMA) model for examining possible predictors of growth of those reserves. The DMS is the best overall across all forecast horizons. While some predictors matter more than others over the forecast horizons, there are few that stand the test of time. The US-China interest rate differential has a superior predictive power among the 13 predictors considered, followed by the nominal effective exchange rate and the interest rate spread for most of the forecast horizons. The relative predictive prowess of the oil and copper prices alternates, depending on the commodity cycles. Policy implications are also provided.
机译:我们开发了模型,以检验涵盖中国及全球贸易,金融和风险(不确定性)因素的中国外汇储备增长的可能预测指标。具体而言,通过与其他替代模型进行比较,我们表明动态模型平均(DMA)和动态模型选择(DMS)模型不仅优于线性模型(例如随机游走,递归OLS-AR(1)模型,具有所有预测变量模型)以及贝叶斯模型平均(BMA)模型,以检查这些储量增长的可能预测因子。 DMS是所有预测范围内最佳的整体。尽管某些预测变量在预测范围内比其他预测变量重要,但很少有经得起时间考验的。在考虑的13个预测变量中,美中利率差异具有更强的预测能力,其次是大多数预测范围内的名义有效汇率和利率利差。石油和铜价格的相对预测能力取决于商品周期。还提供了政策含义。

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